| Literature DB >> 31541396 |
Rustam Ali1,2, Lindsay D Clark3,4, Jacob A Zahm3,5,6, Andrew Lemoff7, Karthik Ramesh3, Daniel M Rosenbaum3, Michael K Rosen8,9.
Abstract
Site specific methyl labeling combined with methyl TROSY offers a powerful NMR approach to study structure and dynamics of proteins and protein complexes of high molecular weight. Robust and cost-effective methods have been developed for site specific protein 1H/13C methyl labeling in an otherwise deuterated background in bacteria. However, bacterial systems are not suitable for expression and isotope labeling of many eukaryotic and membrane proteins. The yeast Pichia pastoris (P. pastoris) is a commonly used host for expression of eukaryotic proteins, and site-specific methyl labeling of perdeuterated eukaryotic proteins has recently been achieved with this system. However, the practical utility of methyl labeling and deuteration in P. pastoris is limited by high costs. Here, we describe an improved method for 1H/13C-labeling of the δ-methyl group of isoleucine residues in a perdeuterated background, which reduces the cost by ≥ 50% without compromising the efficiency of isotope enrichment. We have successfully implemented this method to label actin and a G-protein coupled receptor. Our approach will facilitate studies of the structure and dynamics of eukaryotic proteins by NMR spectroscopy.Entities:
Keywords: 13C methyl labeling; Deuteration; Eukaryotic protein expression; Methyl TROSY; Pichia pastoris expression
Mesh:
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Year: 2019 PMID: 31541396 PMCID: PMC6875547 DOI: 10.1007/s10858-019-00281-1
Source DB: PubMed Journal: J Biomol NMR ISSN: 0925-2738 Impact factor: 2.835
Compositional comparison between glycerol rich old medium (BMGH) and new medium (BMGH*)
| Composition (per liter) | BMGH* | BMGH |
|---|---|---|
| K2HPO4 | 2.29 | 2.29 |
| KH2PO4 | 11.80 | 11.80 |
| YNB* (g) | 26.80 | 13.40 |
| Glycerol (g) | 5.0 | 10.0 |
| Biotin (mg) | 0.8 | 0.4 |
| Histidine (mg) | 80.0 | 40.0 |
YNB* yeast nitrogenous base without amino acids
Fig. 1Comparison between the old and new P. pastoris expression protocols. The optimized new method does not require exchange of final volume 2H2O media and uses less glycerol-d8, cutting costs by ~ 50% (see text)
Fig. 2Measurement of glycerol-d8 in BMGH* medium and comparison of growth rates of cultures grown in old and new media. (a) Cells harboring plasmids expressing actin grow relatively faster and reach a higher density when grown in new optimized medium under otherwise identical conditions. (b) Depletion of glycerol-d8 as a function of time by P. pastoris culture harboring an expression plasmid for drosophila 5C actin. Glycerol-d8 is almost completely depleted at ~ 30 h. Cells were grown an additional 8 h to ensure complete depletion of glycerol-d8 (see text)
Fig. 3Comparison of overexpression of drosophila 5C actin purified from cultures grown using the old and new protocols. (a) SDS PAGE of overexpressed actin. Gel segments show molecular weight markers (BRM; Broad Range protein molecular weight Markers), initial cell pellets (lanes 1–2) and the final purified proteins (lanes 3–4) of the old (lanes 2, 4) and new (lanes 1, 3) protocols. Full gel showing all steps of purification is in Fig. S2. Arrows indicate locations of the expressed His6-thymosin β4-actin fusion, actin, and the TEV protease used to cleave off the His6-thymosin β4-actin tag. (b) Superdex 200 gel filtration chromatography trace of actin purified from cultures grown in old (black) and new (red) media. Proteins eluted at identical volumes
Fig. 4Determination of isotope incorporation efficiency. ESI-LC/MS spectra of protonated (a) and deuterated actin (b). Comparison of mass determined from the spectra shown in (a) and (b) indicates an overall 92% deuterium labeling at non-exchangeable sites. (c) and (d) Mass spectra showing isotopic distribution of tryptic peptides containing an isoleucine (c) or lacking an isoleucine (d) from actin labeled at isoleucine with 1H313C at δ1 and 2H212C at γ1 and otherwise fully protonated (red bars, “labeled”) or simply fully protonated (black bars, “unlabeled”)
Fig. 51H/13C methyl TROSY HMQC spectra and comparison of isotope enrichment in proteins overexpressed in P. pastoris. (a) and (b) 1H/13C methyl TROSY HMQC spectra acquired on 1H/13C isoleucine δ-methyl-labeled drosophila 5C actin (22.5 uM each) prepared using old and new protocols. A horizontal slice extracted from the 2D spectrum at 11.9 ppm in the 13C dimension is shown in the top panel. (c) S/N ratio of intensities for well resolved peaks in 1H/13C methyl TROSY HMQC spectra of actin purified using the old and new protocols. Error bars represent errors propagated from the measurement of noise in the NMR spectra. (d) 1H/13C methyl TROSY HMQC spectrum of 1H/13C isoleucine δ-methyl-labeled A2A receptor (see text for details)